生物基建筑材料——如何揭示材料特性对真菌敏感性的影响?

Liselotte De Ligne, J. Bulcke, J. Baetens, B. Baets, J. Acker
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引用次数: 0

摘要

随着对可持续性和生命周期评估的关注在过去十年中大幅增加,生物基材料在建筑行业中越来越重要。木材和木制品以及由纤维素、木材、亚麻、大麻等制成的绝缘材料的应用越来越广泛。这些材料由可再生资源制成,与其他各种建筑材料(如绝缘聚合物、钢铁和混凝土)相比,能耗要低得多。正如钢铁会腐蚀,混凝土会腐烂一样,生物基建筑材料在暴露于有利于腐烂的条件下也会随着时间的推移而降解。由于真菌不仅会导致美观退化,而且还会严重损害建筑构件的结构完整性,这对于任何使用寿命方法都是至关重要的。因此,无论是对生物基材料的优化应用,还是对新材料的设计,都需要对生物基材料的真菌敏感性有一个正确的认识。基于一系列测试,我们试图揭示材料的化学成分、结构和水分动力学对真菌敏感性的作用,以及这些材料特性之间的相互作用。在第一个测试设置中,即“粘贴测试”,材料的结构被移除,真菌生长在2D中随着时间的推移被评估,只有材料的化学成分起作用。在第二个测试设置中,“x射线CT测试”,使用x射线CT在3D中对真菌的发育进行非破坏性评估,给出与材料结构相关的水分产生和分布随时间的指示。通过比较结果,我们对每种材料特性对真菌敏感性的影响程度有了更好的了解。这些知识可以用于优化生物基材料的真菌测试,确保最佳应用,并为建筑行业提供他们需要的信心,为更可持续的未来铺平道路。
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Bio-Based Building Materials-How to Unravel the Role of Material Characteristics on Fungal Susceptibility?
Bio-based materials are gaining importance in the building industry, as the focus on sustainability and life-cycle-assessment has increased substantially over the last decade. Wood and wood-engineered products as well as insulation materials made from cellulose, wood, flax, hemp, etc. are increasingly used. These materials are made from renewable resources and with considerably lower energy consumption than various other building materials, such as insulation polymers, steel and concrete. As steel can corrode and concrete can rot, so can bio-based building materials degrade over time when exposed to those conditions that favour decay. Since fungi cause not only aesthetical degradation, but can also severely compromise the structural integrity of a building component this is critical for any service life approach. Consequently, a proper understanding of the fungal susceptibility of bio-based materials is needed, both for optimal application of bio-based materials as for the design of new materials. Based on a combination of tests we try to unravel the role of the material’s chemical components, structure and moisture dynamics on its fungal susceptibility, as well as the interaction between those material characteristics. In a first test set-up, the ‘paste test’, the material’s structure is removed and fungal growth is assessed over time in 2D, with only the material’s chemical components playing a role. In the second test set-up, the ‘X-ray CT test’, fungal development is assessed non-destructively in 3D with X-ray CT, giving an indication of moisture production and distribution over time, in relation to the material’s structure. By comparing the results, we have a better idea of how much each material characteristic influences fungal susceptibility. This knowledge can then be used for optimising fungal testing of bio-based materials, ensuring optimal application and providing the building industry with the confidence they need to pave the way to a more sustainable future.
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